287 research outputs found

    Comparison of experimental and numerical sloshing loads in partially filled tanks

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    Sloshing phenomenon consists in the movement of liquids inside partially filled tanks, whichgenerates dynamic loads on the tank structure. Resulting impact pressures are of great importance in assessingstructural strength, and their correct evaluation still represents a challenge for the designer due to the highnonlinearities involved, with complex free surface deformations, violent impact phenomena and influence of airtrapping. In the present paper a set of two-dimensional cases for which experimental results are available areconsidered to assess merits and shortcomings of different numerical methods for sloshing evaluation, namely twocommercial RANS solvers (FLOW-3D and LS-DYNA), and two own developed methods (Smoothed ParticleHydrodynamics and RANS). Impact pressures at different critical locations and global moment induced by watermotion for a partially filled tank with rectangular section having a rolling motion have been evaluated and resultsare compared with experiments

    A new device to measure the structural properties of the femuranterior cruciate ligament-tibia complex

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    Previous studies of biomechanical properties of femur-anterior cruciate ligamenttibia complex (FATC) utilized a wide variety of testing methodologies Introduction The anterior cruciate ligament (ACL) has a very complex anatomy which enables it to perform an important role in guiding knee motion. As the knee undergoes flexionextension, internal-external, and varus-valgus rotation, the length and orientation of the ACL change significantly. The broad attachments of the ACL to both the femur and the tibia allow various portions of the ligament to be relatively taut throughout a full range of knee motion. So, given a particular orientation of the knee, some collagen bundles of the ACL experience tension while other bundles are unloaded Previous studies of the biomechanical properties of the femur-ACL-tibia complexes (FATC) utilized knee orientations and loading directions which were poorly documented and seemingly arbitrary with respect to the ligament orientation relative to the direction of applied load. Thus, data are difficult to compare with one another. Viidik [5] investigated the structural properties of the FATC in rabbits with the knee in a fully extended position and with the femur, tibia, and ACL all aligned along the axis of the applied tensile load. Gupta et al. [6] used a similar experimental set up to test the FATC of canines, but with the tibia externally rotated 90 deg relative to the femur to eliminate the natural twist in the ACL. Noyes and Groo

    Insights into the function of silver as an oxidation catalyst by ab initio, atomistic thermodynamics

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    To help understand the high activity of silver as an oxidation catalyst, e.g., for the oxidation of ethylene to epoxide and the dehydrogenation of methanol to formaldehyde, the interaction and stability of oxygen species at the Ag(111) surface has been studied for a wide range of coverages. Through calculation of the free energy, as obtained from density-functional theory and taking into account the temperature and pressure via the oxygen chemical potential, we obtain the phase diagram of O/Ag(111). Our results reveal that a thin surface-oxide structure is most stable for the temperature and pressure range of ethylene epoxidation and we propose it (and possibly other similar structures) contains the species actuating the catalysis. For higher temperatures, low coverages of chemisorbed oxygen are most stable, which could also play a role in oxidation reactions. For temperatures greater than about 775 K there are no stable oxygen species, except for the possibility of O atoms adsorbed at under-coordinated surface sites Our calculations rule out thicker oxide-like structures, as well as bulk dissolved oxygen and molecular ozone-like species, as playing a role in the oxidation reactions.Comment: 15 pages including 9 figures, Related publications can be found at http://www.fhi-berlin.mpg.de/th/paper.htm

    Niveles de interferón tipo I en pacientes con lupus eritematoso sistémico

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    Introducción: el interferón (IFN) tipo I es una citoquina que juega un rol fundamental en la patogenia del Lupus Eritematoso Sistémico (LES). Diferentes niveles de esta citoquina podrían explicar la heterogeneidad de esta patología y ser útil para evaluar la actividad de la misma. Objetivos: determinar los niveles de IFN tipo I sérico en pacientes con LES y evaluar su utilidad como biomarcador de actividad. Material y Métodos: 16 pacientes con LES (ACR 1997) y 16 controles. Métodos: Actividad de la enfermedad (SLEDAI-2K), daño orgánico (SLICC), IFN tipo I (HEK-Blue-IFNα/β), anticuerpos anti-DNAdc (Inmunofluorescencia Indirecta), anticuerpos anti-ENA (ELISA), C3-C4 (Inmunoturbidimetría). Estadística: InfoStat/Instat/MedCalc. Valores de p<0,05 fueron considerados estadísticamente significativos. Resultados: se observó un aumento de la concentración de IFN en el grupo LES con respecto al control (p<0,05). Los pacientes con valores de IFN superiores al punto de corte, se asociaron con la presencia de anticuerpos anti-DNAdc (OR:13,33;p<0,05). Pacientes con hipocomplementemia y aquellos con puntaje de SLEDAI-2K mayor a 8 presentaron mayores niveles de IFN comparados con pacientes con complemento normal y menor puntaje de índice, respectivamente (p<0,05). Conclusiones: estos resultados sugieren la importancia que podría tener la determinación de IFN tipo I para el monitoreo de la actividad del LES

    Anti-cancer activities of allyl isothiocyanate and its conjugated silicon quantum dots

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    Allyl isothiocyanate (AITC), a dietary phytochemical in some cruciferous vegetables, exhibits promising anticancer activities in many cancer models. However, previous data showed AITC to have a biphasic effect on cell viability, DNA damage and migration in human hepatoma HepG2 cells. Moreover, in a 3D co-culture of HUVEC with pericytes, it inhibited tube formation at high doses but promoted this at low doses, which confirmed its biphasic effect on angiogenesis. siRNA knockdown of Nrf2 and glutathione inhibition abolished the stimulation effect of AITC on cell migration and DNA damage. The biological activity of a novel AITC-conjugated silicon quantum dots (AITC-SiQDs) has been investigated for the first time. AITC-SiQDs showed similar anti-cancer properties to AITC at high doses while avoiding the low doses stimulation effect. In addition, AITC-SiQDs showed a lower and long-lasting activation of Nrf2 translocation into nucleus which correlated with their levels of cellular uptake, as detected by the intrinsic fluorescence of SiQDs. ROS production could be one of the mechanisms behind the anti-cancer effect of AITC-SiQDs. These data provide novel insights into the biphasic effect of AITC and highlight the application of nanotechnology to optimize the therapeutic potential of dietary isothiocyanates in cancer treatment

    Microencapsulation of Lactic Acid Bacteria Improves the Gastrointestinal Delivery and in situ Expression of Recombinant Fluorescent Protein

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    The microencapsulation process of bacteria has been used for many years, mainly in the food industry and, among the different matrixes used, sodium alginate stands out. This matrix forms a protective wall around the encapsulated bacterial culture, increasing its viability and protecting against environmental adversities, such as low pH, for example. The aim of the present study was to evaluate both in vitro and in vivo, the capacity of the encapsulation process to maintain viable lactic acid bacteria (LAB) strains for a longer period of time and to verify if they are able to reach further regions of mouse intestine. For this purpose, a recombinant strain of LAB (L. lactis ssp. cremoris MG1363) carrying the pExu vector encoding the fluorescence protein mCherry [L. lactis MG1363 (pExu:mCherry)] was constructed. The pExu was designed by our group and acts as a vector for DNA vaccines, enabling the host cell to produce the protein of interest. The functionality of the pExu:mCherry vector, was demonstrated in vitro by fluorescence microscopy and flow cytometry after transfection of eukaryotic cells. After this confirmation, the recombinant strain was submitted to encapsulation protocol with sodium alginate (1%). Non-encapsulated, as well as encapsulated strains were orally administered to C57BL/6 mice and the expression of mCherry protein was evaluated at different times (0–168 h) in different bowel portions. Confocal microscopy showed that the expression of mCherry was higher in animals who received the encapsulated strain in all portions of intestine analyzed. These results were confirmed by qRT-PCR assay. Therefore, this is the first study comparing encapsulated and non-encapsulated L. lactis bacteria for mucosal DNA delivery applications. Our results showed that the microencapsulation process is an effective method to improve DNA delivery, ensuring a greater number of viable bacteria are able to reach different sections of the bowel

    Blocking Connexin-43 mediated hemichannel activity protects against early tubular injury in experimental chronic kidney disease

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    Background: Tubulointerstitial fibrosis represents the key underlying pathology of Chronic Kidney Disease (CKD), yet treatment options remain limited. In this study, we investigated the role of connexin43 (Cx43) hemichannel-mediated adenosine triphosphate (ATP) release in purinergic-mediated disassembly of adherens and tight junction complexes in early tubular injury. Methods: Human primary proximal tubule epithelial cells (hPTECs) and clonal tubular epithelial cells (HK2) were treated with Transforming Growth Factor Beta1 (TGFβ1) ± apyrase, or ATPγS for 48h. For inhibitor studies, cells were co-incubated with Cx43 mimetic Peptide 5, or purinergic receptor antagonists Suramin, A438079 or A804598. Immunoblotting, single-cell force spectroscopy and trans-epithelial electrical resistance assessed protein expression, cell-cell adhesion and paracellular permeability. Carboxyfluorescein uptake and biosensing measured hemichannel activity and real-time ATP release, whilst a heterozygous Cx43+/- mouse model with unilateral ureteral obstruction (UUO) assessed the role of Cx43 in vivo. Results: Immunohistochemistry of biopsy material from patients with diabetic nephropathy confirmed increased expression of purinergic receptor P2X7. TGFβ1 increased Cx43 mediated hemichannel activity and ATP release in hPTECs and HK2 cells. The cytokine reduced maximum unbinding forces and reduced cell-cell adhesion, which translated to increased paracellular permeability. Changes were reversed when cells were co-incubated with either Peptide 5 or P2-purinoceptor inhibitors. Cx43+/- mice did not exhibit protein changes associated with early tubular injury in a UUO model of fibrosis. Conclusion: Data suggest that Cx43 mediated ATP release represents an initial trigger in early tubular injury via its actions on the adherens and tight junction complex. Since Cx43 is highly expressed in nephropathy, it represents a novel target for intervention of tubulointerstitial fibrosis in CKD

    Biomechanics and anterior cruciate ligament reconstruction

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    For years, bioengineers and orthopaedic surgeons have applied the principles of mechanics to gain valuable information about the complex function of the anterior cruciate ligament (ACL). The results of these investigations have provided scientific data for surgeons to improve methods of ACL reconstruction and postoperative rehabilitation. This review paper will present specific examples of how the field of biomechanics has impacted the evolution of ACL research. The anatomy and biomechanics of the ACL as well as the discovery of new tools in ACL-related biomechanical study are first introduced. Some important factors affecting the surgical outcome of ACL reconstruction, including graft selection, tunnel placement, initial graft tension, graft fixation, graft tunnel motion and healing, are then discussed. The scientific basis for the new surgical procedure, i.e., anatomic double bundle ACL reconstruction, designed to regain rotatory stability of the knee, is presented. To conclude, the future role of biomechanics in gaining valuable in-vivo data that can further advance the understanding of the ACL and ACL graft function in order to improve the patient outcome following ACL reconstruction is suggested
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